A driver circuit includes a first voltage conversion unit, a second voltage conversion unit, a third voltage conversion unit, a light driver and a control circuit. The first voltage conversion unit may convert a first voltage to a second voltage. The second voltage conversion unit may convert the second voltage to a third voltage in a non-electrically isolated manner. The third voltage conversion unit may convert the second voltage to a fourth voltage in a non-electrically isolated manner. The light driver may receive the third voltage and a control signal to generate a control current according to the control signal. The control circuit may receive the fourth voltage and an image signal to generate the control signal according to the image signal.
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1. A driver circuit comprising:
a first voltage conversion unit configured to convert a first voltage to a second voltage, the first voltage conversion unit comprising an input terminal configured to receive the first voltage and an output terminal configured to output the second voltage;
a second voltage conversion unit configured to convert the second voltage to a third voltage in a non-electrically isolated manner, the second voltage conversion unit comprising an input terminal configured to receive the second voltage, an output terminal configured to output the third voltage, and a non-isolated voltage converter without two coils separated by an isolation distance;
a third voltage conversion unit configured to convert the second voltage to a fourth voltage in a non-electrically isolated manner, the third voltage conversion unit comprising an input terminal configured to receive the second voltage, an output terminal configured to output the fourth voltage, and a non-isolated voltage converter without two coils separated by an isolation distance;
a light source driver configured to receive the third voltage and a control signal to generate a control current according to the control signal, the light source driver comprising a first terminal coupled to the output terminal of the second voltage conversion unit and configured to receive the third voltage, a second terminal configured to receive the control signal and an output terminal configured to output the control current;
a control circuit configured to receive the fourth voltage and an image signal and generate the control signal according to the image signal, the control circuit comprising a first terminal coupled to the output terminal of the third voltage conversion unit, a second terminal configured to receive the image signal and an output terminal configured to output the control signal;
a first transmission module comprising an output terminal coupled to the second terminal of the control circuit and configured to output the image signal, and a first wireless transmission interface configured to wirelessly receive a wireless image signal, wherein the image signal is generated according to the wireless image signal; and
a second transmission module comprising a second wireless transmission interface configured to wirelessly transmit the wireless image signal;
wherein the first voltage conversion unit, the second voltage conversion unit, the third voltage conversion unit, the light source driver and the control circuit are at a primary side, and the first transmission module and the second transmission module are used to insure safety of a user.
2. The driver circuit of
3. The driver circuit of
a light source configured to generate light according to the control current; and
an image generating unit configured to generate an image beam by reflecting the light projected onto the image generating unit.
4. The driver circuit of
a housing comprising a power interface and a light outlet, wherein the power interface is coupled to the input terminal of the first voltage conversion unit and configured to receive the first voltage, and the image beam is projected out of the housing from the light outlet.
5. The driver circuit of
6. The driver circuit of
7. The driver circuit of
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The disclosure is related to a driver circuit and a projector, and more particularly, a driver circuit and a projector including voltage conversion units at a primary side.
In current applications, projecting content to be displayed on a display screen by means of a projector for users to watch has been in common use in the display field. In a driver circuit of a projector, it is often needed to embed a voltage converter to perform voltage conversion. For example, an LLC resonant voltage converter may be used to perform voltage conversion for converting a high voltage to a low voltage to provide power to another circuit.
However, in order to comply with safety regulations, there must be electrical isolation in a voltage converter. An isolation distance of the electrical isolation has to comply with related regulations, and a circuit is therefore divided into a primary side and a secondary side. Portions that a user may touch should be at the secondary side to ensure the safety of the user.
Because it is difficult to avoid using a voltage converter with electrical isolation, the abovementioned structure will result in difficulties of improving the power conversion efficiency and reducing the circuit size and circuit complexity.
An embodiment provides a driver circuit including a first voltage conversion unit, a second voltage conversion unit, a third voltage conversion unit, a light source driver and a control circuit. The first voltage conversion unit may be used to convert a first voltage to a second voltage. The first voltage conversion unit may include an input terminal used to receive the first voltage and an output terminal used to output the second voltage. The second voltage conversion unit may be used to convert the second voltage to a third voltage in a non-electrically isolated manner. The second voltage conversion unit may include an input terminal used to receive the second voltage and an output terminal used to output the third voltage. The third voltage conversion unit may be used to convert the second voltage to a fourth voltage in a non-electrically isolated manner. The third voltage conversion unit may include an input terminal used to receive the second voltage and an output terminal used to output the fourth voltage. The light source driver may be used to receive the third voltage and a control signal to generate a control current according to the control signal. The light source driver may include a first terminal coupled to the output terminal of the second voltage conversion unit and used to receive the third voltage, a second terminal used to receive the control signal and an output terminal used to output the control current. The control circuit may be used to receive the fourth voltage and an image signal and generate the control signal according to the image signal. The control circuit may include a first terminal coupled to the output terminal of the third voltage conversion unit, a second terminal used to receive the image signal and an output terminal used to output the control signal.
Another embodiment provides a projector including a housing, a first voltage conversion unit, alight source driver, alight source, a second voltage conversion unit and a control circuit module. The housing may include a power interface and a light outlet. The first voltage conversion unit may be electrically connected to the power interface and used to boost a first voltage inputted from the power interface to a second voltage. The light source driver may be used to receive the second voltage and generate a control current according to a control signal. The light source may be used to generate light according to the control current. The second voltage conversion unit may be used to step down the second voltage to a third voltage in a non-electrically isolated manner. The second voltage conversion unit may include an input terminal used to receive the second voltage, and an output terminal used to output the third voltage. The control circuit module may include an image processing unit and an image generating unit. An operation voltage of the control circuit module is provided by the third voltage. The image processing unit may control the image generating unit according to an image signal. The light may be projected to the image generating unit to generate an image beam. The image beam may be projected out of the housing from the light outlet.
Another embodiment provides a driver circuit including a first voltage conversion unit, a second voltage conversion unit, a light source driver and a control circuit. The first voltage conversion unit may be used to convert a first voltage to a second voltage. The first voltage conversion unit may include an input terminal used to receive the first voltage and an output terminal used to output the second voltage. The second voltage conversion unit may be used to convert the second voltage to a third voltage in a non-electrically isolated manner. The second voltage conversion unit may include an input terminal used to receive the second voltage and an output terminal used to output the third voltage. The light source driver may be used to receive the second voltage and a control signal to generate a control current according to the control signal. The light source driver may include a first terminal coupled to the output terminal of the first voltage conversion unit and used to receive the second voltage, a second terminal used to receive the control signal and an output terminal used to output the control current. The control circuit may be used to receive the third voltage and an image signal and generate the control signal according to the image signal. The control circuit may include a first terminal coupled to the output terminal of the second voltage conversion unit, a second terminal used to receive the image signal and an output terminal used to output the control signal.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
The voltage conversion unit 110 may be used to convert a voltage V1 to a voltage V2. The voltage conversion unit 110 may include an input terminal used to receive the voltage V1 and an output terminal used to output the voltage V2. The voltage conversion unit 120 may be used to convert the voltage V2 to a voltage V3. The voltage conversion unit 120 may include an input terminal used to receive the voltage V2 and an output terminal used to output the voltage V3, where the voltage conversion unit 120 may perform voltage conversion in a non-electrically isolated manner. The voltage conversion unit 130 may be used to convert the voltage V2 to a voltage V4. The voltage conversion unit 130 may include an input terminal used to receive the voltage V2 and an output terminal used to output the voltage V4 where the voltage conversion unit 130 may perform voltage conversion in a non-electrically isolated manner. In other words, inside each of the voltage conversion units 120 and 130, it is unnecessary to embed two coils separated with an isolation distance. Hence, each of the voltage conversion units 120 and 130 may be at a primary side.
The light source driver 155 may be used to receive the voltage V3 and a control signal Sc to generate a control current Ic according to the control signal Sc. The light source driver 155 may include a first terminal coupled to the output terminal of the voltage conversion unit 120 and used to receive the voltage V3, a second terminal used to receive the control signal Sc and an output terminal used to output the control current Ic. The control circuit 166 may be used to receive the voltage V4 and an image signal Si and generate the control signal Sc according to the image signal Si. The control circuit 166 may include a first terminal coupled to the output terminal of the voltage conversion unit 130, a second terminal used to receive the image signal Si and an output terminal used to output the control signal Sc.
According to an embodiment, the voltage V1 may be an alternating-current (AC) voltage, and the voltages V2, V3 and V4 may be direct-current (DC) voltages. For example, the voltage V1 may be a mains voltage providing AC 220V or AC 110V. The voltage V2 may be DC 380V. The voltage V3 may be DC 50V or DC 380V. The voltage V4 may be DC 3.3V or DC 12V. The abovementioned voltage values are merely examples instead of limiting the scope of embodiments.
According to an embodiment, the voltage conversion unit 110 may be a power factor correction (PFC) voltage conversion unit. According to an embodiment, each of the voltage conversion units 120 and 130 may be a non-isolated voltage converter. For example, each of the voltage conversion units 120 and 130 may include a buck voltage converter, a buck-boost voltage converter, a boost-buck voltage converter, a boost voltage converter, a Cuk voltage converter, a SEPIC voltage converter, a ZETA voltage converter or a charge pump voltage converter.
As shown in
According to an embodiment, the driver circuit 100 may further include a housing Sh. The housing Sh may include a power interface Eo and a light outlet Bo. The power interface Eo may be coupled to the input terminal of the voltage conversion unit 110 and used to receive the voltage V1, and the image beam B may be projected out of the housing Sh from the light outlet Bo.
As shown in
For example, the transmission module 190 may be a device with a wireless transmission function such as a mobile phone, a tablet computer, a notebook computer, a portable device or a computer device externally connected to a wireless transmission device. Hence, content to be projected (e.g., pictures, text, video, slides) and related control signals (e.g., changing page number of slides, pausing a video, playing a video, adjusting brightness) may be transmitted to the transmission module 180 using the wireless image signal Sw to perform image projection and related controls.
For example, as shown in
As shown in
Because it is unnecessary to use voltage conversion units with electrical isolation, the power conversion efficiency may be improved, and the circuit size and circuit complexity may be reduced. For example, compared with using voltage conversion units with electrical isolation (e.g., LLC resonant voltage converters), using a driver circuit provided by an embodiment may increase the power conversion efficiency from 78% to 84%, reducing the circuit size by more than 15% and reducing manufacture cost by more than 11%.
As shown in
According to an embodiment, as shown in
As shown in
For example, the housing Sh shown in
In summary, by means of a driver circuit and a projector provided by embodiments, the circuit inside a housing may be at a primary side, and it may be avoided using voltage conversion units with electrical isolation. Hence, power conversion efficiency may be improved, circuit size and cost may be reduced, and the circuit may comply with related safety regulations to protect users from electric shocks. The disclosure is therefore helpful to reduce engineering problems in the field.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Chen, Chi-Jen, Lu, Fang-Chieh, Chen, Chuan-Chu, Tsou, Ching-Ying
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
10091473, | Aug 30 2017 | Qisda Corporation | Driver circuit having light source driver at primary side |
10790693, | May 16 2016 | LG INNOTEK CO , LTD | Wireless power control method and device |
20040090392, | |||
20140221740, | |||
CN101493643, | |||
CN102843027, | |||
CN107567132, |
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